Literature DB >> 18714879

Impact of aerial spraying of pyrethrin insecticide on Culex pipiens and Culex tarsalis (Diptera: Culicidae) abundance and West Nile virus infection rates in an urban/suburban area of Sacramento County, California.

Dia-Eldin A Elnaiem1, Kara Kelley, Stan Wright, Rhonda Laffey, Glenn Yoshimura, Marcia Reed, Gary Goodman, Tara Thiemann, Lisa Reimer, William K Reisen, David Brown.   

Abstract

In response to an epidemic amplification of West Nile virus (family Flaviviridae, genus Flavivirus, WNV), the Sacramento and Yolo Mosquito and Vector Control District (SYMVCD) sprayed ultralow-volume (ULV) formulations of pyrethrin insecticide (Evergreen EC 60-6: 6% pyrethrin insecticide, 60% piperonylbutoxide; MGK, Minneapolis, MN, applied as 0.003 kg/ha [0.0025 lb/acre] ) over 218 km2 in north Sacramento and 243.5 km2 in south Sacramento on three consecutive evenings in August 2005. We evaluated the impact of this intervention in north Sacramento on the abundance and WNV infection rates of Culex pipiens L. and Culex tarsalis Coquillett. Mortality rates of caged Cx. tarsalis sentinels ranged from 0% under dense canopy to 100% in open fields. A comparison of weekly geometric mean mosquito abundance in CO2-baited traps in sprayed and unsprayed areas before and after treatment indicated a 75.0 and 48.7% reduction in the abundance of Cx. pipiens and Cx. tarsalis, respectively. This reduction was statistically significant for Cx. pipiens, the primary vector of WNV, with highest abundance in this urban area, but not for Cx. tarsalis, which is more associated with rural areas. The infection rates of WNV in Cx. pipiens and Cx. tarsalis collected from the spray zone were 8.2 and 4.3 per 1,000 female mosquitoes in the 2 wk before and the 2 wk after applications of insecticide, respectively. In comparison, WNV infection rates in Cx. pipiens and Cx. tarsalis collected at same time interval in the unsprayed zone were 2.0 and 8.7 per 1,000, respectively. Based on the reduction in vector abundance and its effects on number of infective bites received by human population, we concluded that the aerial application ofpyrethrin insecticide reduced the transmission intensity of WNV and decreased the risk of human infection.

Entities:  

Mesh:

Substances:

Year:  2008        PMID: 18714879     DOI: 10.1603/0022-2585(2008)45[751:ioasop]2.0.co;2

Source DB:  PubMed          Journal:  J Med Entomol        ISSN: 0022-2585            Impact factor:   2.278


  21 in total

Review 1.  North American wetlands and mosquito control.

Authors:  Jorge R Rey; William E Walton; Roger J Wolfe; C Roxanne Connelly; Sheila M O'Connell; Joe Berg; Gabrielle E Sakolsky-Hoopes; Aimlee D Laderman
Journal:  Int J Environ Res Public Health       Date:  2012-12-10       Impact factor: 3.390

2.  Correlation between aerial insecticide spraying to interrupt west nile virus transmission and emergency department visits in Sacramento County, California.

Authors:  Estella M Geraghty; Helene G Margolis; Anne Kjemtrup; William Reisen; Peter Franks
Journal:  Public Health Rep       Date:  2013 May-Jun       Impact factor: 2.792

Review 3.  West Nile virus state of the art report of MALWEST Project.

Authors:  Andriani Marka; Alexandros Diamantidis; Anna Papa; George Valiakos; Serafeim C Chaintoutis; Dimitrios Doukas; Persefoni Tserkezou; Alexios Giannakopoulos; Konstantinos Papaspyropoulos; Eleni Patsoula; Evangelos Badieritakis; Agoritsa Baka; Maria Tseroni; Danai Pervanidou; Nikos T Papadopoulos; George Koliopoulos; Dimitrios Tontis; Chrysostomos I Dovas; Charalambos Billinis; Athanassios Tsakris; Jenny Kremastinou; Christos Hadjichristodoulou; Nikolaos Vakalis; Evdokia Vassalou; Spyridoula Zarzani; Athanassios Zounos; Katerina Komata; Georgios Balatsos; Stavroula Beleri; Anastasia Mpimpa; Vasilios Papavasilopoulos; Ioannis Rodis; Grigorios Spanakos; Nikolaos Tegos; Vasiliki Spyrou; Zisis Dalabiras; Periklis Birtsas; Labrini Athanasiou; Maria Papanastassopoulou; Charalambos Ioannou; Christos Athanasiou; Christos Gerofotis; Elpida Papadopoulou; Theodolinta Testa; Ourania Tsakalidou; George Rachiotis; Nikolaos Bitsolas; Zissis Mamouris; Katerina Moutou; Theologia Sarafidou; Konstantinos Stamatis; Konstantina Sarri; Sotirios Tsiodras; Theano Georgakopoulou; Marios Detsis; Maria Mavrouli; Anastasia Stavropoulou; Lida Politi; Georgia Mageira; Varvara Christopoulou; Georgia Diamantopoulou; Nikolaos Spanakis; Georgia Vrioni; Evangelia-Theofano Piperaki; Kornilia Mitsopoulou; Ilias Kioulos; Antonios Michaelakis; Ioannis Stathis; Ioannis Tselentis; Anna Psaroulaki; Maria Keramarou; Dimosthenis Chochlakis; Yeorgios Photis; Maria Konstantinou; Panagiotis Manetos; Stylianos Tsobanoglou; Spyros Mourelatos; Vasilis Antalis; Panagiotis Pergantas; Georgios Eleftheriou
Journal:  Int J Environ Res Public Health       Date:  2013-12-02       Impact factor: 3.390

4.  Effect of aerial insecticide spraying on West Nile virus disease--north-central Texas, 2012.

Authors:  Duke J Ruktanonchai; Shelley Stonecipher; Nicole Lindsey; Janet McAllister; Satish K Pillai; Kalanthe Horiuchi; Mark Delorey; Brad J Biggerstaff; Tom Sidwa; James Zoretic; Roger Nasci; Marc Fischer; Susan L Hills
Journal:  Am J Trop Med Hyg       Date:  2014-04-28       Impact factor: 2.345

Review 5.  Reducing West Nile Virus Risk Through Vector Management.

Authors:  Roger S Nasci; John-Paul Mutebi
Journal:  J Med Entomol       Date:  2019-10-28       Impact factor: 2.278

6.  Spatio-temporal cluster analysis of county-based human West Nile virus incidence in the continental United States.

Authors:  Ramanathan Sugumaran; Scott R Larson; John P Degroote
Journal:  Int J Health Geogr       Date:  2009-07-13       Impact factor: 3.918

7.  Rift Valley Fever - assessment of effectiveness of surveillance and control measures in the EU.

Authors:  Søren Saxmose Nielsen; Julio Alvarez; Dominique Joseph Bicout; Paolo Calistri; Klaus Depner; Julian Ashley Drewe; Bruno Garin-Bastuji; José Luis Gonzales Rojas; Christian Gortázar Schmidt; Mette Herskin; Virginie Michel; Miguel Ángel Miranda Chueca; Paolo Pasquali; Helen Clare Roberts; Liisa Helena Sihvonen; Karl Stahl; Antonio Velarde Calvo; Arvo Viltrop; Christoph Winckler; Simon Gubbins; Sotiria-Eleni Antoniou; Alessandro Broglia; Josè Cortiñas Abrahantes; Sofie Dhollander; Yves Van der Stede
Journal:  EFSA J       Date:  2020-11-05

8.  Testing independent and interactive effects of corticosterone and synergized resmethrin on the immune response to West Nile virus in chickens.

Authors:  Mark D Jankowski; J Christian Franson; Erich Möstl; Warren P Porter; Erik K Hofmeister
Journal:  Toxicology       Date:  2010-01-22       Impact factor: 4.221

Review 9.  How Plants Synthesize Pyrethrins: Safe and Biodegradable Insecticides.

Authors:  Daniel B Lybrand; Haiyang Xu; Robert L Last; Eran Pichersky
Journal:  Trends Plant Sci       Date:  2020-07-17       Impact factor: 18.313

10.  Emerging Mosquito Resistance to Piperonyl Butoxide-Synergized Pyrethroid Insecticide and Its Mechanism.

Authors:  Guofa Zhou; Yiji Li; Brook Jeang; Xiaoming Wang; Robert F Cummings; Daibin Zhong; Guiyun Yan
Journal:  J Med Entomol       Date:  2022-03-16       Impact factor: 2.278

View more

北京卡尤迪生物科技股份有限公司 © 2022-2023.